College of Engineering, Swansea University, Swansea, SA2 8PP, UK.
Int J Numer Method Biomed Eng. 2013 Oct;29(10):1038-56. doi: 10.1002/cnm.2581. Epub 2013 Jul 25.
The importance of the endothelium in the local regulation of blood flow is reflected by its influence on vascular tone by means of vasodilatory responses to many physiological stimuli. Regulatory pathways are affected by mass transport and wall shear stress (WSS), via mechanotransduction mechanisms. In the present work, we review the most relevant computational models that have been proposed to date, and introduce a general framework for modelling the responses of the endothelium to alteration in the flow, with a view to understanding the biomechanical processes involved in the pathways to endothelial dysfunction. Simulations are performed on two different patient-specific stenosed carotid artery geometries to investigate the influence of WSS and mass transport phenomena upon the agonist coupling response at the endothelium. In particular, results presented for two different models of WSS-dependent adenosine-5'-triphosphate (ATP) release reveal that existing paradigms may not account for the conditions encountered in vivo and may therefore not be adequate to model the kinetics of ATP at the endothelium.
内皮细胞在局部调节血流中的重要性反映在其通过对许多生理刺激的血管舒张反应来影响血管张力。调节途径受质量传递和壁切应力(WSS)的影响,通过力学转导机制。在本工作中,我们回顾了迄今为止提出的最相关的计算模型,并引入了一个通用框架来模拟内皮对流动变化的反应,以期了解涉及内皮功能障碍途径的生物力学过程。在两种不同的患者特定狭窄颈动脉几何形状上进行模拟,以研究 WSS 和质量传递现象对内皮激动剂偶联反应的影响。特别是,针对两种不同的 WSS 依赖性三磷酸腺苷(ATP)释放模型呈现的结果表明,现有的范例可能无法解释体内遇到的情况,因此可能不足以对内皮细胞中 ATP 的动力学进行建模。